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Let's say I define a function

(defn func [a] a)

Then I define

(def funcUsage (func 5))

If I now use funcUsage twice, does the function func get called twice or is the return value stored into funcUsage? I.e

(println funcUsage)
(println funcUsage)

Would that be equivalent to

(println (func 5))
(println (func 5))

? It seems like that in my program. Does def store the value of an evaluated function?

3

When you evaluate (def funcUsage (func 5)), func is called once and value 5 is bound to symbol funcUsage.

When you evaluate

(println funcUsage)
(println funcUsage)

you only print value of symbol, func is not called again. So, these calls:

(println funcUsage)
(println funcUsage)

(func is not called) and

(println (func 5))
(println (func 5))

(func is called twice) are not equivalent.

You can also test it, if you add some side effect for func like this: (defn func [a] (println "I am called...") a) or (defn func [a] (Thread/sleep 1000) a).

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  • It's worth noting that the def is evaluated each time the namespace is loaded and that will happen in situations like AOT compiling when building an uberjar. Having def expressions that contain side-effects is therefore a very bad idea but for simple, pure computations like this it's "OK". Sep 13 at 17:49
0

The def form creates a Clojure Var. Each Var is like a global variable that points to a value. In your case, (func 5) will be called once and the result is saved in the Var funcUsage.

You can find more information in this list of documentation. Be sure to see the Clojure CheatSheet and the books Brave Clojure and Getting Clojure.

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